A subsea switchgear apparatus

The subsea switchgear apparatus addresses maintenance and operational safety challenges by using pressure-separated canisters with gas-filled chambers for circuit breakers, enabling efficient maintenance and adaptation to marine conditions.

EP2052447B2Active Publication Date: 2025-11-05VETCO GRAY SCANDINAVIA
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Patent Information

Application Number
EP2007789472
Authority / Receiving Office
EP · EP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2006-07-05
Filing Date
2007-07-04
Publication Date
2025-11-05
Estimated Expiration
2027-07-04

AI Technical Summary

Technical Problem

Existing subsea switchgear apparatuses face challenges in maintaining and replacing circuit breakers efficiently while ensuring operational safety and flexibility under high-pressure marine environments.

Method used

A subsea switchgear apparatus design featuring canisters with pressure barriers separating the circuit breaker chamber from the distribution chamber, allowing for easy maintenance and replacement of circuit breakers, and incorporating pressure vessels filled with gas to protect the circuit breakers during faults, with canisters being modular and releasable for adaptability.

Benefits of technology

Facilitates safe and flexible maintenance of circuit breakers, enhances operational reliability, and allows the apparatus to adapt to varying operating conditions by enabling easy replacement and modular expansion.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a subsea switchgear apparatus, which comprises: - a frame (10), - at least one electrical power inlet (1 1 ) mounted to the frame (10), - at least one electrical power outlet (12) mounted to the frame (10), - a distribution chamber (31 ) mounted to the frame (10), - at least one canister (20), which is mounted to the frame (10) and comprises a chamber (21 ) accommodating at least one high voltage circuit breaker (22), and - electrical connections (32) arranged in the distribution chamber (31 ) for electrically connecting the respective circuit breaker (22) of a canister (20) to the associated power inlet (11 ) and power outlet (12) of the switchgear apparatus (1 ). The chamber (21 ) of the respective canister (20) is separated from the distribution chamber (31 ) by a pressure barrier (23).
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Description

FIELD OF THE INVENTION AND PRIOR ART

[0001] The present invention relates to a subsea switchgear apparatus.

[0002] One example can be found in the document GB2194980, which is considered the closest prior art.

[0003] The inventive subsea switchgear apparatus comprises one or several circuit breakers to be used for subsea applications. Application areas are typically in a subsea plant for extraction and / or processing of well fluid in the form of oil or natural gas from a subsea well where electrical power is needed and for offshore power generation.SUMMARY OF THE INVENTION

[0004] The object of the present invention is to provide a subsea switchgear apparatus of new and advantageous design.

[0005] According to the invention, this object is achieved by a subsea switchgear apparatus having the features defined in claim 1.

[0006] The inventive subsea switchgear apparatus comprises: a frame, at least one electrical power inlet mounted to the frame, at least one electrical power outlet mounted to the frame, a distribution chamber mounted to the frame, at least one canister, which is mounted to the distribution chamber and comprises a chamber accommodating at least one high voltage circuit breaker, and electrical connections arranged in the distribution chamber for electrically connecting the respective circuit breaker of a canister to the associated power inlet and power outlet of the switchgear apparatus; wherein the chamber of the respective canister is separated from the distribution chamber by a pressure barrier.

[0007] The pressure barrier between the distribution chamber and the chamber of a canister facilitates maintenance, repair and replacement of a circuit breaker accommodated in said chamber of the canister. Furthermore, the respective canister will protect the circuit breaker or circuit breakers disposed therein in case a circuit breaker of another canister is subjected to a fault

[0008] According to the invention, the respective canister constitutes a pressure vessel, the chamber of the canister being filled with gas.

[0009] According to another embodiment of the invention, each canister constitutes a separate module that is releasably mountable to the distribution chamber. Consequently, it will be possible to remove a canister together with its circuit breaker or circuit breakers from the remaining parts of the switchgear apparatus when a circuit breaker of the canister is to be subjected to replacement or repair (when the switchgear apparatus is taken out of normal operation). Furthermore, by the arrangement of circuit breakers in canister modules, the subsea switchgear apparatus becomes very flexible and it will be possible to easily adapt the switchgear apparatus as needed to the prevailing operating conditions.

[0010] Further advantages as well as advantageous features of the inventive subsea switchgear apparatus will appear from the following description and the dependent claims.BRIEF DESCRIPTION OF THE DRAWINGS

[0011] With reference to the appended drawings, a specific description of preferred embodiments of the invention cited as examples follows below. In the drawings: Fig 1ais a schematic longitudinal sectional view of a switchgear apparatus according to a first embodiment of the present invention, Fig 1bis a schematic planar view from above of the switchgear apparatus of Fig 1 a, Fig 1cis a schematic frontal view of the switchgear apparatus of Fig 1a, Fig 2ais a schematic longitudinal sectional view of a switchgear apparatus according to a second embodiment of the present invention, Fig 2bis a schematic planar view from above of the switchgear apparatus of Fig 2a, Fig 2cis a schematic frontal view of the switchgear apparatus of Fig 2a, Fig 3ais a schematic longitudinal sectional view of a switchgear apparatus according to a third embodiment of the present invention, Fig 3bis a schematic planar view from above of the switchgear apparatus of Fig 3a, Fig 3cis a schematic frontal view of the switchgear apparatus of Fig 3a, Fig 4is a schematic sectional view of a canister and a distribution chamber forming part of the switchgear apparatus of Figs 1-3, Fig 5ais a schematic sectional view of a switchgear apparatus according to a fourth embodiment of the present invention, Fig 5bis a schematic planar view from above of the switchgear apparatus of Fig 5a with the canister of the switchgear apparatus shown in cross section, and Fig 6is a schematic longitudinal sectional view of a switchgear apparatus according to a fifth embodiment of the present invention. DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS OF THE INVENTION

[0012] Figs 1a-1c, 2a-2c, 3a-3c, 5a-5b and 6 illustrate very schematically subsea switchgear apparatuses 1 according to different embodiments of the present invention.

[0013] The inventive switchgear apparatus 1 comprises: a frame 10, at least one electrical power inlet 11 mounted to the frame 10, at least one electrical power outlet 12 mounted to the frame 10, a distribution chamber 31 mounted to the frame 10, at least one canister 20, which is mounted to the distribution chamber 31 and comprises a chamber 21 accommodating at least one high voltage circuit breaker 22, and electrical connections 32 arranged in the distribution chamber 31 for electrically connecting the respective circuit breaker 22 of a canister 20 to the associated power inlet 11 and power outlet 12 of the switchgear apparatus 1.

[0014] In the illustrated embodiments, the frame 10 is designed as a framework. The different parts of the switchgear apparatus 1 are supported by this frame 10, which for instance may rest on the seabed when the switchgear apparatus is installed at a subsea plant.

[0015] The switchgear apparatus 1 may be provided with any suitable number of canisters 20. In the embodiments illustrated in Figs 1a-1c and Fig 6, the switchgear apparatus 1 comprises four canisters 20, each of which accommodating one circuit breaker 22. In the embodiment illustrated in Figs 2a-2c, the switchgear apparatus 1 comprises two canisters 20, each of which accommodating one circuit breaker 22. In the embodiment illustrated in Figs 3a-3c, the switchgear apparatus 1 comprises only one canister 20, which accommodates one circuit breaker 22. If so desired, two or more circuit breakers 22 may be accommodated in a separate canister 20. In the embodiment illustrated in Figs 5a and 5b, the switchgear apparatus 1 comprises only one canister 20, which accommodates four circuit breakers 22. The respective circuit breaker 22 is mounted to a support frame 25 (see Fig 4) arranged in the chamber 21 of the associated canister 20.

[0016] The chamber 21 of the respective canister 20 is separated from the distribution chamber 31 by a pressure barrier 23. The medium contained in the chamber 21 of a canister 20 is separated from the medium contained in the distribution chamber 31 by said pressure barrier 23.

[0017] The respective canister 20 constitutes a pressure vessel and the chamber 21 of the canister 20 is suitably filled with gas. Preferably, the pressure of the gas within the chamber 21 of the canister 20 is essentially equal to atmospheric pressure. In the illustrated embodiments, the pressure barrier 23 between the chamber 21 of the respective canister 20 and the distribution chamber 31 is formed by a bottom wall 24 of the canister. A canister 20 of suitable design is illustrated in closer detail in Fig 4.

[0018] In the illustrated embodiments, the circuit breaker 22 of the respective canister 20 is electrically connected to the associated electrical connections 32 of the distribution chamber 31 via high voltage penetrators 33 extending through the pressure barrier 23 between the canister chamber 21 and the distribution chamber 31. Each canister 20 is provided with a control unit 26 for controlling the associated circuit breaker 22 and a sensor unit 27, as illustrated in Fig 4. Connections for external control cables may be located on the frame 10, said connections being connected to the control unit 26 via a suitable conductor piping extending into the distribution chamber 31 and further via low voltage penetrators 37 extending through the pressure barrier 23 between the canister chamber 21 and the distribution chamber 31. Each canister 20 suitably constitutes a separate module that is releasably mountable to the distribution chamber 31.

[0019] In the embodiments illustrated in Figs 1a-1c, 2a-2c, 3a-3c, 4 and 6, the respective canister 20 is mounted to the distribution chamber 31 with the canister resting on the upper wall 34 of distribution chamber 31 via the bottom wall 24 of the canister. In these illustrated embodiments, each canister 20 comprises a pressure shell formed by: a bottom plate 24 (which not necessarily is flat), which forms the above-indicated bottom wall and which is realeasably secured to the upper wall 34 of the distribution chamber 31 by bolts 38, a cone-shaped lower part 28 rigidly attached to the bottom plate 24, and an upper part 29 forming a cover and realeasably secured to the lower part 28 via a flange joint 36.

[0020] In this case, all the equipment within the respective canister 20 is suitably mounted to the bottom plate 24 and / or to the lower part 28.

[0021] The electrical connections 32 of the distribution chamber 31 may be electrical cables, which are secured to cable racks 35 arranged in the distribution chamber 31.

[0022] The distribution chamber 31 is preferably filled with a dielectric medium, such as oil. The distribution chamber 31 is with advantage volume compensated, preferably to the ambient sea, by means of any suitable volume compensating means. Furthermore, the distribution chamber 31 is with advantage pressure balanced, preferably against ambient sea water pressure, by means of any suitable pressure balancing means. This implies that the distribution chamber 31 may be a soft tank. Different types of volume compensating means and pressure balancing means that are suitable for subsea use and that may be used for the distribution chamber are well known to persons skilled in the art and will therefore not be more closely described is this description. The distribution chamber 31 suitably forms part of a separate distribution chamber module 30 that is realeasably mountable to the frame 10.

[0023] In the embodiments illustrated in Figs 1a-1c, 2a-2c, 3a-3c and 6, the subsea switchgear apparatus 1 comprises an inlet chamber 41, which accommodates a busbar rail 42 connected to high voltage bushings 43 arranged between the inlet chamber 41 and the distribution chamber 31. The respective power inlet 11 is connected to the associated electrical connections 32 of the distribution chamber 31 via said busbar rail 42 and said high voltage bushings 43. The inlet chamber 41 is preferably filled with a dielectric medium, such as oil. The inlet chamber 41 is with advantage volume compensated to the distribution chamber 31 by means of any suitable volume compensating means. Furthermore, the inlet chamber 41 is with advantage pressure balanced against the distribution chamber pressure by means of any suitable pressure balancing means. This implies that the inlet chamber 41 may be a soft tank. Different types of volume compensating means and pressure balancing means that are suitable for subsea use and that may be used for the inlet chamber are well known to persons skilled in the art and will therefore not be more closely described is this description. The respective bushing 43 between the inlet chamber 41 and the distribution chamber 31 may be a high voltage oil / gas bushing of standard industrial type modified and adapted for use in high pressure environment when these chambers are so designed that the differential pressure between them equals zero. The bushings are fixed to a seal plate which is releasably mounted to a wall of the distribution chamber 31, and which constitutes a part of the cable rack 35.

[0024] The inlet chamber 41 suitably forms part of a separate inlet chamber module 40 that is mounted inside the distribution chamber 31, as illustrated in Fig 6. In the embodiment illustrated in Fig 6, the inlet chamber module 40 is mounted to a holder 46 arranged inside the distribution chamber 31. The respective power inlet 11 is connected to a busbar rail 42 in the inlet chamber 41 via a high voltage bushing 47 extending across an external wall 34 of the distribution chamber 41 and an external wall 48 of the inlet chamber 41. By this arrangement of the inlet chamber module 40 inside the distribution chamber 31, the busbar rails 42 and other electrical components accommodated in the inlet chamber 41 are protected from the ambient sea water by a double barrier. Thus, if sea water would leak through the first barrier formed by the walls of the distribution chamber 31, the second barrier formed by the walls of the inlet chamber 41 will prevent the sea water from entering the inlet chamber 41 and coming into contact with the electrical components accommodated therein, and the normal operation of the switchgear apparatus may thereby proceed despite the ingress of sea water.

[0025] The inlet chamber 41 may alternatively form part of a separate inlet chamber module 40 that is releasably mountable to the frame 10 adjacent to the distribution chamber module 30, as illustrated in Figs 1a and 2a.

[0026] The high current parts accommodated in the distribution chamber 31 and / or in the inlet chamber 41 are suitably located in dielectric oil in order to provide efficient cooling thereof.

[0027] The respective power inlet 11 comprises an electrical inlet connector 14 secured to the frame 10 for receiving a corresponding connector of a power supply line. In the embodiment illustrated in Figs 1a-1c, the switchgear apparatus 1 is provided with three inlet connectors 14 in the form of 1-pin connectors. In the embodiments illustrated in Figs 2a-2c and 3a-3c, the switchgear apparatus 1 is provided with one single inlet connector 14 in the form of a 3-pin connector.

[0028] The respective power outlet 12 comprises an electrical outlet connector 15 secured to the frame 10 for receiving a corresponding connector of a power supply line. Each circuit breaker 22 is associated with its own outlet connector 15. In the illustrated embodiments, the respective outlet connector 15 has the form of a 3-pin connector. Alternatively, space may be provided for 3 off single pin connectors.

[0029] The switchgear apparatus is suitably so designed that the electrical power inlets and electrical power outlets are designed for zero-differential pressure, which will make it possible to use standard subsea electrical connectors.

[0030] Standard industrial application circuit breakers and measurement systems may be used in the inventive switchgear apparatus.

[0031] The invention is of course not in any way restricted to the embodiments described above. On the contrary, many possibilities to modifications thereof will be apparent to a person with ordinary skill in the art without departing from the basic idea of the invention such as defined in the appended claims.

Claims

1. A subsea switchgear apparatus comprising a frame (10); at least one electrical power inlet (11) mounted to the frame; at least one electrical power outlet (12) mounted to the frame: a distribution chamber (31) mounted to the frame (10); at least one canister (20) mounted to the distribution chamber (31) and comprising a chamber (21) accommodating at least one high voltage circuit breaker (22); electrical connections (32) arranged in the distribution chamber (31) for electrically connecting the respective circuit breaker (22) of a canister (20) to the associated power inlet (11) and power outlet (12) of the switchgear apparatus; the chamber (21) of the respective canister (20) being separated from the distribution chamber (31) by a pressure barrier (23) wherein the respective canister (20) constitutes a pressure vessel, the chamber of the canister being filled with gas.

2. A subsea switchgear apparatus according to claim 1, characterized in that the pressure of the gas within the chamber (21) of the canister (20) is essentially equal to atmospheric pressure.

3. A subsea switchgear apparatus according to any of claims 1-2, characterized in that the pressure barrier (23) between a canister chamber (21) and the distribution chamber (31) is formed by a bottom wall (24) of the canister.

4. A subsea switchgear apparatus according to any of claims 1-3, characterized in that the respective circuit breaker (22) of a canister (20) is electrically connected to the associated electrical connections (32) of the distribution chamber (31) via penetrators (33) extending through the pressure barrier (23) between the canister chamber (21) and the distribution chamber (31).

5. A subsea switchgear apparatus according to any of claims 1-3, characterized in that each canister (20 constitutes a separate module that is releasably mountable to the distribution chamber (31).

6. A subsea switchgear apparatus according to any of claims 1-5, characterized in that the distribution chamber (31) forms part of a separate distribution chamber module (30) that is releasably mountable to the frame (10).

7. A subsea switchgear apparatus according to any of claims 1-6, characterized in that the distribution chamber (31) is filled with a dielectric medium.

8. A subsea switchgear apparatus according to any of claims 1-7, characterized in that the distribution chamber (31) is volume compensated, preferably to the ambient sea.

9. A subsea switchgear apparatus according to any of claims 1-8, characterized in that the distribution chamber (31) is pressure balanced, preferably against ambient sea water pressure.

10. A subsea switchgear apparatus according to any of claims 1-9, characterized in that the switchgear apparatus comprises an inlet chamber (41), which accommodates a busbar rail (42) connected to high voltage bushings (43) arranged between the inlet chamber (41) and the distribution chamber (31), the respective power inlet (11) being connected to the associated electrical connections (32) of the distribution chamber (31) via said busbar rail (42) and said high voltage bushings (43).

11. A subsea switchgear apparatus according to claim 10, characterized in that the inlet chamber (41) forms part of a separate inlet chamber module (40) that is releasably mountable to the frame (10).

12. A subsea switchgear apparatus according to claim 10, characterized in that the inlet chamber (41) forms part of a separate inlet chamber module (40) that is mounted inside the distribution chamber (31).

13. A subsea switchgear apparatus according to any of claims 10-12, characterized in that the inlet chamber (41) is filled with a dielectric medium.

14. A subsea switchgear apparatus according to any of claims 10-13, characterized in that the inlet chamber (41) is volume compensated to the distribution chamber (31).

15. A subsea switchgear apparatus according t any of claims 10-14, characterized in that the inlet chamber (41) is pressure balanced against the distribution chamber pressure.

16. A subsea switchgear apparatus according to any of claims 1-15, characterized in that the respective power inlet (11) comprises an electrical inlet connector (14) secured to the frame (10) for receiving a corresponding connector of a power supply line.

17. A subsea switchgear apparatus according to any of claims 1-16, characterized in that the respective power outlet (12) comprises an electrical outlet connector (15) secured to the frame (10) for receiving a corresponding connector of a power supply line.

Citation Information

Patent Citations

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    GB2194980A

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    US20030153468A1

  • Switch for high voltage and / or current

    US20060131143A1

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    US4241379A

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    US4767351A